vfs_mount.c revision 204066
1/*-
2 * Copyright (c) 1999-2004 Poul-Henning Kamp
3 * Copyright (c) 1999 Michael Smith
4 * Copyright (c) 1989, 1993
5 *	The Regents of the University of California.  All rights reserved.
6 * (c) UNIX System Laboratories, Inc.
7 * All or some portions of this file are derived from material licensed
8 * to the University of California by American Telephone and Telegraph
9 * Co. or Unix System Laboratories, Inc. and are reproduced herein with
10 * the permission of UNIX System Laboratories, Inc.
11 *
12 * Redistribution and use in source and binary forms, with or without
13 * modification, are permitted provided that the following conditions
14 * are met:
15 * 1. Redistributions of source code must retain the above copyright
16 *    notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 *    notice, this list of conditions and the following disclaimer in the
19 *    documentation and/or other materials provided with the distribution.
20 * 4. Neither the name of the University nor the names of its contributors
21 *    may be used to endorse or promote products derived from this software
22 *    without specific prior written permission.
23 *
24 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
25 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
28 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 * SUCH DAMAGE.
35 */
36
37#include <sys/cdefs.h>
38__FBSDID("$FreeBSD: head/sys/kern/vfs_mount.c 204066 2010-02-18 22:22:45Z pjd $");
39
40#include <sys/param.h>
41#include <sys/conf.h>
42#include <sys/fcntl.h>
43#include <sys/jail.h>
44#include <sys/kernel.h>
45#include <sys/libkern.h>
46#include <sys/malloc.h>
47#include <sys/mount.h>
48#include <sys/mutex.h>
49#include <sys/namei.h>
50#include <sys/priv.h>
51#include <sys/proc.h>
52#include <sys/filedesc.h>
53#include <sys/reboot.h>
54#include <sys/syscallsubr.h>
55#include <sys/sysproto.h>
56#include <sys/sx.h>
57#include <sys/sysctl.h>
58#include <sys/sysent.h>
59#include <sys/systm.h>
60#include <sys/vnode.h>
61#include <vm/uma.h>
62
63#include <geom/geom.h>
64
65#include <machine/stdarg.h>
66
67#include <security/audit/audit.h>
68#include <security/mac/mac_framework.h>
69
70#include "opt_rootdevname.h"
71
72#define	ROOTNAME		"root_device"
73#define	VFS_MOUNTARG_SIZE_MAX	(1024 * 64)
74
75static void	set_rootvnode(void);
76static int	vfs_domount(struct thread *td, const char *fstype,
77		    char *fspath, int fsflags, void *fsdata);
78static int	vfs_mountroot_ask(void);
79static int	vfs_mountroot_try(const char *mountfrom, const char *options);
80static void	free_mntarg(struct mntarg *ma);
81
82static int	usermount = 0;
83SYSCTL_INT(_vfs, OID_AUTO, usermount, CTLFLAG_RW, &usermount, 0,
84    "Unprivileged users may mount and unmount file systems");
85
86MALLOC_DEFINE(M_MOUNT, "mount", "vfs mount structure");
87MALLOC_DEFINE(M_VNODE_MARKER, "vnodemarker", "vnode marker");
88static uma_zone_t mount_zone;
89
90/* List of mounted filesystems. */
91struct mntlist mountlist = TAILQ_HEAD_INITIALIZER(mountlist);
92
93/* For any iteration/modification of mountlist */
94struct mtx mountlist_mtx;
95MTX_SYSINIT(mountlist, &mountlist_mtx, "mountlist", MTX_DEF);
96
97/*
98 * The vnode of the system's root (/ in the filesystem, without chroot
99 * active.)
100 */
101struct vnode	*rootvnode;
102
103/*
104 * The root filesystem is detailed in the kernel environment variable
105 * vfs.root.mountfrom, which is expected to be in the general format
106 *
107 * <vfsname>:[<path>][	<vfsname>:[<path>] ...]
108 * vfsname   := the name of a VFS known to the kernel and capable
109 *              of being mounted as root
110 * path      := disk device name or other data used by the filesystem
111 *              to locate its physical store
112 *
113 * If the environment variable vfs.root.mountfrom is a space separated list,
114 * each list element is tried in turn and the root filesystem will be mounted
115 * from the first one that suceeds.
116 *
117 * The environment variable vfs.root.mountfrom.options is a comma delimited
118 * set of string mount options.  These mount options must be parseable
119 * by nmount() in the kernel.
120 */
121
122/*
123 * Global opts, taken by all filesystems
124 */
125static const char *global_opts[] = {
126	"errmsg",
127	"fstype",
128	"fspath",
129	"ro",
130	"rw",
131	"nosuid",
132	"noexec",
133	NULL
134};
135
136/*
137 * The root specifiers we will try if RB_CDROM is specified.
138 */
139static char *cdrom_rootdevnames[] = {
140	"cd9660:cd0",
141	"cd9660:acd0",
142	NULL
143};
144
145/* legacy find-root code */
146char		*rootdevnames[2] = {NULL, NULL};
147#ifndef ROOTDEVNAME
148#  define ROOTDEVNAME NULL
149#endif
150static const char	*ctrootdevname = ROOTDEVNAME;
151
152/*
153 * ---------------------------------------------------------------------
154 * Functions for building and sanitizing the mount options
155 */
156
157/* Remove one mount option. */
158static void
159vfs_freeopt(struct vfsoptlist *opts, struct vfsopt *opt)
160{
161
162	TAILQ_REMOVE(opts, opt, link);
163	free(opt->name, M_MOUNT);
164	if (opt->value != NULL)
165		free(opt->value, M_MOUNT);
166	free(opt, M_MOUNT);
167}
168
169/* Release all resources related to the mount options. */
170void
171vfs_freeopts(struct vfsoptlist *opts)
172{
173	struct vfsopt *opt;
174
175	while (!TAILQ_EMPTY(opts)) {
176		opt = TAILQ_FIRST(opts);
177		vfs_freeopt(opts, opt);
178	}
179	free(opts, M_MOUNT);
180}
181
182void
183vfs_deleteopt(struct vfsoptlist *opts, const char *name)
184{
185	struct vfsopt *opt, *temp;
186
187	if (opts == NULL)
188		return;
189	TAILQ_FOREACH_SAFE(opt, opts, link, temp)  {
190		if (strcmp(opt->name, name) == 0)
191			vfs_freeopt(opts, opt);
192	}
193}
194
195/*
196 * Check if options are equal (with or without the "no" prefix).
197 */
198static int
199vfs_equalopts(const char *opt1, const char *opt2)
200{
201	char *p;
202
203	/* "opt" vs. "opt" or "noopt" vs. "noopt" */
204	if (strcmp(opt1, opt2) == 0)
205		return (1);
206	/* "noopt" vs. "opt" */
207	if (strncmp(opt1, "no", 2) == 0 && strcmp(opt1 + 2, opt2) == 0)
208		return (1);
209	/* "opt" vs. "noopt" */
210	if (strncmp(opt2, "no", 2) == 0 && strcmp(opt1, opt2 + 2) == 0)
211		return (1);
212	while ((p = strchr(opt1, '.')) != NULL &&
213	    !strncmp(opt1, opt2, ++p - opt1)) {
214		opt2 += p - opt1;
215		opt1 = p;
216		/* "foo.noopt" vs. "foo.opt" */
217		if (strncmp(opt1, "no", 2) == 0 && strcmp(opt1 + 2, opt2) == 0)
218			return (1);
219		/* "foo.opt" vs. "foo.noopt" */
220		if (strncmp(opt2, "no", 2) == 0 && strcmp(opt1, opt2 + 2) == 0)
221			return (1);
222	}
223	return (0);
224}
225
226/*
227 * If a mount option is specified several times,
228 * (with or without the "no" prefix) only keep
229 * the last occurence of it.
230 */
231static void
232vfs_sanitizeopts(struct vfsoptlist *opts)
233{
234	struct vfsopt *opt, *opt2, *tmp;
235
236	TAILQ_FOREACH_REVERSE(opt, opts, vfsoptlist, link) {
237		opt2 = TAILQ_PREV(opt, vfsoptlist, link);
238		while (opt2 != NULL) {
239			if (vfs_equalopts(opt->name, opt2->name)) {
240				tmp = TAILQ_PREV(opt2, vfsoptlist, link);
241				vfs_freeopt(opts, opt2);
242				opt2 = tmp;
243			} else {
244				opt2 = TAILQ_PREV(opt2, vfsoptlist, link);
245			}
246		}
247	}
248}
249
250/*
251 * Build a linked list of mount options from a struct uio.
252 */
253int
254vfs_buildopts(struct uio *auio, struct vfsoptlist **options)
255{
256	struct vfsoptlist *opts;
257	struct vfsopt *opt;
258	size_t memused, namelen, optlen;
259	unsigned int i, iovcnt;
260	int error;
261
262	opts = malloc(sizeof(struct vfsoptlist), M_MOUNT, M_WAITOK);
263	TAILQ_INIT(opts);
264	memused = 0;
265	iovcnt = auio->uio_iovcnt;
266	for (i = 0; i < iovcnt; i += 2) {
267		namelen = auio->uio_iov[i].iov_len;
268		optlen = auio->uio_iov[i + 1].iov_len;
269		memused += sizeof(struct vfsopt) + optlen + namelen;
270		/*
271		 * Avoid consuming too much memory, and attempts to overflow
272		 * memused.
273		 */
274		if (memused > VFS_MOUNTARG_SIZE_MAX ||
275		    optlen > VFS_MOUNTARG_SIZE_MAX ||
276		    namelen > VFS_MOUNTARG_SIZE_MAX) {
277			error = EINVAL;
278			goto bad;
279		}
280
281		opt = malloc(sizeof(struct vfsopt), M_MOUNT, M_WAITOK);
282		opt->name = malloc(namelen, M_MOUNT, M_WAITOK);
283		opt->value = NULL;
284		opt->len = 0;
285		opt->pos = i / 2;
286		opt->seen = 0;
287
288		/*
289		 * Do this early, so jumps to "bad" will free the current
290		 * option.
291		 */
292		TAILQ_INSERT_TAIL(opts, opt, link);
293
294		if (auio->uio_segflg == UIO_SYSSPACE) {
295			bcopy(auio->uio_iov[i].iov_base, opt->name, namelen);
296		} else {
297			error = copyin(auio->uio_iov[i].iov_base, opt->name,
298			    namelen);
299			if (error)
300				goto bad;
301		}
302		/* Ensure names are null-terminated strings. */
303		if (namelen == 0 || opt->name[namelen - 1] != '\0') {
304			error = EINVAL;
305			goto bad;
306		}
307		if (optlen != 0) {
308			opt->len = optlen;
309			opt->value = malloc(optlen, M_MOUNT, M_WAITOK);
310			if (auio->uio_segflg == UIO_SYSSPACE) {
311				bcopy(auio->uio_iov[i + 1].iov_base, opt->value,
312				    optlen);
313			} else {
314				error = copyin(auio->uio_iov[i + 1].iov_base,
315				    opt->value, optlen);
316				if (error)
317					goto bad;
318			}
319		}
320	}
321	vfs_sanitizeopts(opts);
322	*options = opts;
323	return (0);
324bad:
325	vfs_freeopts(opts);
326	return (error);
327}
328
329/*
330 * Merge the old mount options with the new ones passed
331 * in the MNT_UPDATE case.
332 *
333 * XXX This function will keep a "nofoo" option in the
334 *     new options if there is no matching "foo" option
335 *     to be cancelled in the old options.  This is a bug
336 *     if the option's canonical name is "foo".  E.g., "noro"
337 *     shouldn't end up in the mount point's active options,
338 *     but it can.
339 */
340static void
341vfs_mergeopts(struct vfsoptlist *toopts, struct vfsoptlist *opts)
342{
343	struct vfsopt *opt, *opt2, *new;
344
345	TAILQ_FOREACH(opt, opts, link) {
346		/*
347		 * Check that this option hasn't been redefined
348		 * nor cancelled with a "no" mount option.
349		 */
350		opt2 = TAILQ_FIRST(toopts);
351		while (opt2 != NULL) {
352			if (strcmp(opt2->name, opt->name) == 0)
353				goto next;
354			if (strncmp(opt2->name, "no", 2) == 0 &&
355			    strcmp(opt2->name + 2, opt->name) == 0) {
356				vfs_freeopt(toopts, opt2);
357				goto next;
358			}
359			opt2 = TAILQ_NEXT(opt2, link);
360		}
361		/* We want this option, duplicate it. */
362		new = malloc(sizeof(struct vfsopt), M_MOUNT, M_WAITOK);
363		new->name = malloc(strlen(opt->name) + 1, M_MOUNT, M_WAITOK);
364		strcpy(new->name, opt->name);
365		if (opt->len != 0) {
366			new->value = malloc(opt->len, M_MOUNT, M_WAITOK);
367			bcopy(opt->value, new->value, opt->len);
368		} else {
369			new->value = NULL;
370		}
371		new->len = opt->len;
372		new->seen = opt->seen;
373		TAILQ_INSERT_TAIL(toopts, new, link);
374next:
375		continue;
376	}
377}
378
379/*
380 * Mount a filesystem.
381 */
382int
383nmount(td, uap)
384	struct thread *td;
385	struct nmount_args /* {
386		struct iovec *iovp;
387		unsigned int iovcnt;
388		int flags;
389	} */ *uap;
390{
391	struct uio *auio;
392	int error;
393	u_int iovcnt;
394
395	AUDIT_ARG_FFLAGS(uap->flags);
396	CTR4(KTR_VFS, "%s: iovp %p with iovcnt %d and flags %d", __func__,
397	    uap->iovp, uap->iovcnt, uap->flags);
398
399	/*
400	 * Filter out MNT_ROOTFS.  We do not want clients of nmount() in
401	 * userspace to set this flag, but we must filter it out if we want
402	 * MNT_UPDATE on the root file system to work.
403	 * MNT_ROOTFS should only be set in the kernel in vfs_mountroot_try().
404	 */
405	uap->flags &= ~MNT_ROOTFS;
406
407	iovcnt = uap->iovcnt;
408	/*
409	 * Check that we have an even number of iovec's
410	 * and that we have at least two options.
411	 */
412	if ((iovcnt & 1) || (iovcnt < 4)) {
413		CTR2(KTR_VFS, "%s: failed for invalid iovcnt %d", __func__,
414		    uap->iovcnt);
415		return (EINVAL);
416	}
417
418	error = copyinuio(uap->iovp, iovcnt, &auio);
419	if (error) {
420		CTR2(KTR_VFS, "%s: failed for invalid uio op with %d errno",
421		    __func__, error);
422		return (error);
423	}
424	error = vfs_donmount(td, uap->flags, auio);
425
426	free(auio, M_IOV);
427	return (error);
428}
429
430/*
431 * ---------------------------------------------------------------------
432 * Various utility functions
433 */
434
435void
436vfs_ref(struct mount *mp)
437{
438
439	CTR2(KTR_VFS, "%s: mp %p", __func__, mp);
440	MNT_ILOCK(mp);
441	MNT_REF(mp);
442	MNT_IUNLOCK(mp);
443}
444
445void
446vfs_rel(struct mount *mp)
447{
448
449	CTR2(KTR_VFS, "%s: mp %p", __func__, mp);
450	MNT_ILOCK(mp);
451	MNT_REL(mp);
452	MNT_IUNLOCK(mp);
453}
454
455static int
456mount_init(void *mem, int size, int flags)
457{
458	struct mount *mp;
459
460	mp = (struct mount *)mem;
461	mtx_init(&mp->mnt_mtx, "struct mount mtx", NULL, MTX_DEF);
462	lockinit(&mp->mnt_explock, PVFS, "explock", 0, 0);
463	return (0);
464}
465
466static void
467mount_fini(void *mem, int size)
468{
469	struct mount *mp;
470
471	mp = (struct mount *)mem;
472	lockdestroy(&mp->mnt_explock);
473	mtx_destroy(&mp->mnt_mtx);
474}
475
476/*
477 * Allocate and initialize the mount point struct.
478 */
479struct mount *
480vfs_mount_alloc(struct vnode *vp, struct vfsconf *vfsp, const char *fspath,
481    struct ucred *cred)
482{
483	struct mount *mp;
484
485	mp = uma_zalloc(mount_zone, M_WAITOK);
486	bzero(&mp->mnt_startzero,
487	    __rangeof(struct mount, mnt_startzero, mnt_endzero));
488	TAILQ_INIT(&mp->mnt_nvnodelist);
489	mp->mnt_nvnodelistsize = 0;
490	mp->mnt_ref = 0;
491	(void) vfs_busy(mp, MBF_NOWAIT);
492	mp->mnt_op = vfsp->vfc_vfsops;
493	mp->mnt_vfc = vfsp;
494	vfsp->vfc_refcount++;	/* XXX Unlocked */
495	mp->mnt_stat.f_type = vfsp->vfc_typenum;
496	mp->mnt_gen++;
497	strlcpy(mp->mnt_stat.f_fstypename, vfsp->vfc_name, MFSNAMELEN);
498	mp->mnt_vnodecovered = vp;
499	mp->mnt_cred = crdup(cred);
500	mp->mnt_stat.f_owner = cred->cr_uid;
501	strlcpy(mp->mnt_stat.f_mntonname, fspath, MNAMELEN);
502	mp->mnt_iosize_max = DFLTPHYS;
503#ifdef MAC
504	mac_mount_init(mp);
505	mac_mount_create(cred, mp);
506#endif
507	arc4rand(&mp->mnt_hashseed, sizeof mp->mnt_hashseed, 0);
508	return (mp);
509}
510
511/*
512 * Destroy the mount struct previously allocated by vfs_mount_alloc().
513 */
514void
515vfs_mount_destroy(struct mount *mp)
516{
517
518	MNT_ILOCK(mp);
519	mp->mnt_kern_flag |= MNTK_REFEXPIRE;
520	if (mp->mnt_kern_flag & MNTK_MWAIT) {
521		mp->mnt_kern_flag &= ~MNTK_MWAIT;
522		wakeup(mp);
523	}
524	while (mp->mnt_ref)
525		msleep(mp, MNT_MTX(mp), PVFS, "mntref", 0);
526	KASSERT(mp->mnt_ref == 0,
527	    ("%s: invalid refcount in the drain path @ %s:%d", __func__,
528	    __FILE__, __LINE__));
529	if (mp->mnt_writeopcount != 0)
530		panic("vfs_mount_destroy: nonzero writeopcount");
531	if (mp->mnt_secondary_writes != 0)
532		panic("vfs_mount_destroy: nonzero secondary_writes");
533	mp->mnt_vfc->vfc_refcount--;
534	if (!TAILQ_EMPTY(&mp->mnt_nvnodelist)) {
535		struct vnode *vp;
536
537		TAILQ_FOREACH(vp, &mp->mnt_nvnodelist, v_nmntvnodes)
538			vprint("", vp);
539		panic("unmount: dangling vnode");
540	}
541	if (mp->mnt_nvnodelistsize != 0)
542		panic("vfs_mount_destroy: nonzero nvnodelistsize");
543	if (mp->mnt_lockref != 0)
544		panic("vfs_mount_destroy: nonzero lock refcount");
545	MNT_IUNLOCK(mp);
546#ifdef MAC
547	mac_mount_destroy(mp);
548#endif
549	if (mp->mnt_opt != NULL)
550		vfs_freeopts(mp->mnt_opt);
551	crfree(mp->mnt_cred);
552	uma_zfree(mount_zone, mp);
553}
554
555int
556vfs_donmount(struct thread *td, int fsflags, struct uio *fsoptions)
557{
558	struct vfsoptlist *optlist;
559	struct vfsopt *opt, *noro_opt, *tmp_opt;
560	char *fstype, *fspath, *errmsg;
561	int error, fstypelen, fspathlen, errmsg_len, errmsg_pos;
562	int has_rw, has_noro;
563
564	errmsg = fspath = NULL;
565	errmsg_len = has_noro = has_rw = fspathlen = 0;
566	errmsg_pos = -1;
567
568	error = vfs_buildopts(fsoptions, &optlist);
569	if (error)
570		return (error);
571
572	if (vfs_getopt(optlist, "errmsg", (void **)&errmsg, &errmsg_len) == 0)
573		errmsg_pos = vfs_getopt_pos(optlist, "errmsg");
574
575	/*
576	 * We need these two options before the others,
577	 * and they are mandatory for any filesystem.
578	 * Ensure they are NUL terminated as well.
579	 */
580	fstypelen = 0;
581	error = vfs_getopt(optlist, "fstype", (void **)&fstype, &fstypelen);
582	if (error || fstype[fstypelen - 1] != '\0') {
583		error = EINVAL;
584		if (errmsg != NULL)
585			strncpy(errmsg, "Invalid fstype", errmsg_len);
586		goto bail;
587	}
588	fspathlen = 0;
589	error = vfs_getopt(optlist, "fspath", (void **)&fspath, &fspathlen);
590	if (error || fspath[fspathlen - 1] != '\0') {
591		error = EINVAL;
592		if (errmsg != NULL)
593			strncpy(errmsg, "Invalid fspath", errmsg_len);
594		goto bail;
595	}
596
597	/*
598	 * We need to see if we have the "update" option
599	 * before we call vfs_domount(), since vfs_domount() has special
600	 * logic based on MNT_UPDATE.  This is very important
601	 * when we want to update the root filesystem.
602	 */
603	TAILQ_FOREACH_SAFE(opt, optlist, link, tmp_opt) {
604		if (strcmp(opt->name, "update") == 0) {
605			fsflags |= MNT_UPDATE;
606			vfs_freeopt(optlist, opt);
607		}
608		else if (strcmp(opt->name, "async") == 0)
609			fsflags |= MNT_ASYNC;
610		else if (strcmp(opt->name, "force") == 0) {
611			fsflags |= MNT_FORCE;
612			vfs_freeopt(optlist, opt);
613		}
614		else if (strcmp(opt->name, "reload") == 0) {
615			fsflags |= MNT_RELOAD;
616			vfs_freeopt(optlist, opt);
617		}
618		else if (strcmp(opt->name, "multilabel") == 0)
619			fsflags |= MNT_MULTILABEL;
620		else if (strcmp(opt->name, "noasync") == 0)
621			fsflags &= ~MNT_ASYNC;
622		else if (strcmp(opt->name, "noatime") == 0)
623			fsflags |= MNT_NOATIME;
624		else if (strcmp(opt->name, "atime") == 0) {
625			free(opt->name, M_MOUNT);
626			opt->name = strdup("nonoatime", M_MOUNT);
627		}
628		else if (strcmp(opt->name, "noclusterr") == 0)
629			fsflags |= MNT_NOCLUSTERR;
630		else if (strcmp(opt->name, "clusterr") == 0) {
631			free(opt->name, M_MOUNT);
632			opt->name = strdup("nonoclusterr", M_MOUNT);
633		}
634		else if (strcmp(opt->name, "noclusterw") == 0)
635			fsflags |= MNT_NOCLUSTERW;
636		else if (strcmp(opt->name, "clusterw") == 0) {
637			free(opt->name, M_MOUNT);
638			opt->name = strdup("nonoclusterw", M_MOUNT);
639		}
640		else if (strcmp(opt->name, "noexec") == 0)
641			fsflags |= MNT_NOEXEC;
642		else if (strcmp(opt->name, "exec") == 0) {
643			free(opt->name, M_MOUNT);
644			opt->name = strdup("nonoexec", M_MOUNT);
645		}
646		else if (strcmp(opt->name, "nosuid") == 0)
647			fsflags |= MNT_NOSUID;
648		else if (strcmp(opt->name, "suid") == 0) {
649			free(opt->name, M_MOUNT);
650			opt->name = strdup("nonosuid", M_MOUNT);
651		}
652		else if (strcmp(opt->name, "nosymfollow") == 0)
653			fsflags |= MNT_NOSYMFOLLOW;
654		else if (strcmp(opt->name, "symfollow") == 0) {
655			free(opt->name, M_MOUNT);
656			opt->name = strdup("nonosymfollow", M_MOUNT);
657		}
658		else if (strcmp(opt->name, "noro") == 0) {
659			fsflags &= ~MNT_RDONLY;
660			has_noro = 1;
661		}
662		else if (strcmp(opt->name, "rw") == 0) {
663			fsflags &= ~MNT_RDONLY;
664			has_rw = 1;
665		}
666		else if (strcmp(opt->name, "ro") == 0)
667			fsflags |= MNT_RDONLY;
668		else if (strcmp(opt->name, "rdonly") == 0) {
669			free(opt->name, M_MOUNT);
670			opt->name = strdup("ro", M_MOUNT);
671			fsflags |= MNT_RDONLY;
672		}
673		else if (strcmp(opt->name, "suiddir") == 0)
674			fsflags |= MNT_SUIDDIR;
675		else if (strcmp(opt->name, "sync") == 0)
676			fsflags |= MNT_SYNCHRONOUS;
677		else if (strcmp(opt->name, "union") == 0)
678			fsflags |= MNT_UNION;
679	}
680
681	/*
682	 * If "rw" was specified as a mount option, and we
683	 * are trying to update a mount-point from "ro" to "rw",
684	 * we need a mount option "noro", since in vfs_mergeopts(),
685	 * "noro" will cancel "ro", but "rw" will not do anything.
686	 */
687	if (has_rw && !has_noro) {
688		noro_opt = malloc(sizeof(struct vfsopt), M_MOUNT, M_WAITOK);
689		noro_opt->name = strdup("noro", M_MOUNT);
690		noro_opt->value = NULL;
691		noro_opt->len = 0;
692		noro_opt->pos = -1;
693		noro_opt->seen = 1;
694		TAILQ_INSERT_TAIL(optlist, noro_opt, link);
695	}
696
697	/*
698	 * Be ultra-paranoid about making sure the type and fspath
699	 * variables will fit in our mp buffers, including the
700	 * terminating NUL.
701	 */
702	if (fstypelen >= MFSNAMELEN - 1 || fspathlen >= MNAMELEN - 1) {
703		error = ENAMETOOLONG;
704		goto bail;
705	}
706
707	mtx_lock(&Giant);
708	error = vfs_domount(td, fstype, fspath, fsflags, optlist);
709	mtx_unlock(&Giant);
710bail:
711	/* copyout the errmsg */
712	if (errmsg_pos != -1 && ((2 * errmsg_pos + 1) < fsoptions->uio_iovcnt)
713	    && errmsg_len > 0 && errmsg != NULL) {
714		if (fsoptions->uio_segflg == UIO_SYSSPACE) {
715			bcopy(errmsg,
716			    fsoptions->uio_iov[2 * errmsg_pos + 1].iov_base,
717			    fsoptions->uio_iov[2 * errmsg_pos + 1].iov_len);
718		} else {
719			copyout(errmsg,
720			    fsoptions->uio_iov[2 * errmsg_pos + 1].iov_base,
721			    fsoptions->uio_iov[2 * errmsg_pos + 1].iov_len);
722		}
723	}
724
725	if (error != 0)
726		vfs_freeopts(optlist);
727	return (error);
728}
729
730/*
731 * Old mount API.
732 */
733#ifndef _SYS_SYSPROTO_H_
734struct mount_args {
735	char	*type;
736	char	*path;
737	int	flags;
738	caddr_t	data;
739};
740#endif
741/* ARGSUSED */
742int
743mount(td, uap)
744	struct thread *td;
745	struct mount_args /* {
746		char *type;
747		char *path;
748		int flags;
749		caddr_t data;
750	} */ *uap;
751{
752	char *fstype;
753	struct vfsconf *vfsp = NULL;
754	struct mntarg *ma = NULL;
755	int error;
756
757	AUDIT_ARG_FFLAGS(uap->flags);
758
759	/*
760	 * Filter out MNT_ROOTFS.  We do not want clients of mount() in
761	 * userspace to set this flag, but we must filter it out if we want
762	 * MNT_UPDATE on the root file system to work.
763	 * MNT_ROOTFS should only be set in the kernel in vfs_mountroot_try().
764	 */
765	uap->flags &= ~MNT_ROOTFS;
766
767	fstype = malloc(MFSNAMELEN, M_TEMP, M_WAITOK);
768	error = copyinstr(uap->type, fstype, MFSNAMELEN, NULL);
769	if (error) {
770		free(fstype, M_TEMP);
771		return (error);
772	}
773
774	AUDIT_ARG_TEXT(fstype);
775	mtx_lock(&Giant);
776	vfsp = vfs_byname_kld(fstype, td, &error);
777	free(fstype, M_TEMP);
778	if (vfsp == NULL) {
779		mtx_unlock(&Giant);
780		return (ENOENT);
781	}
782	if (vfsp->vfc_vfsops->vfs_cmount == NULL) {
783		mtx_unlock(&Giant);
784		return (EOPNOTSUPP);
785	}
786
787	ma = mount_argsu(ma, "fstype", uap->type, MNAMELEN);
788	ma = mount_argsu(ma, "fspath", uap->path, MNAMELEN);
789	ma = mount_argb(ma, uap->flags & MNT_RDONLY, "noro");
790	ma = mount_argb(ma, !(uap->flags & MNT_NOSUID), "nosuid");
791	ma = mount_argb(ma, !(uap->flags & MNT_NOEXEC), "noexec");
792
793	error = vfsp->vfc_vfsops->vfs_cmount(ma, uap->data, uap->flags);
794	mtx_unlock(&Giant);
795	return (error);
796}
797
798
799/*
800 * vfs_domount(): actually attempt a filesystem mount.
801 */
802static int
803vfs_domount(
804	struct thread *td,	/* Calling thread. */
805	const char *fstype,	/* Filesystem type. */
806	char *fspath,		/* Mount path. */
807	int fsflags,		/* Flags common to all filesystems. */
808	void *fsdata		/* Options local to the filesystem. */
809	)
810{
811	struct vnode *vp;
812	struct mount *mp;
813	struct vfsconf *vfsp;
814	struct oexport_args oexport;
815	struct export_args export;
816	int error, flag = 0;
817	struct vattr va;
818	struct nameidata nd;
819
820	mtx_assert(&Giant, MA_OWNED);
821	/*
822	 * Be ultra-paranoid about making sure the type and fspath
823	 * variables will fit in our mp buffers, including the
824	 * terminating NUL.
825	 */
826	if (strlen(fstype) >= MFSNAMELEN || strlen(fspath) >= MNAMELEN)
827		return (ENAMETOOLONG);
828
829	if (jailed(td->td_ucred) || usermount == 0) {
830		if ((error = priv_check(td, PRIV_VFS_MOUNT)) != 0)
831			return (error);
832	}
833
834	/*
835	 * Do not allow NFS export or MNT_SUIDDIR by unprivileged users.
836	 */
837	if (fsflags & MNT_EXPORTED) {
838		error = priv_check(td, PRIV_VFS_MOUNT_EXPORTED);
839		if (error)
840			return (error);
841	}
842	if (fsflags & MNT_SUIDDIR) {
843		error = priv_check(td, PRIV_VFS_MOUNT_SUIDDIR);
844		if (error)
845			return (error);
846	}
847	/*
848	 * Silently enforce MNT_NOSUID and MNT_USER for unprivileged users.
849	 */
850	if ((fsflags & (MNT_NOSUID | MNT_USER)) != (MNT_NOSUID | MNT_USER)) {
851		if (priv_check(td, PRIV_VFS_MOUNT_NONUSER) != 0)
852			fsflags |= MNT_NOSUID | MNT_USER;
853	}
854
855	/* Load KLDs before we lock the covered vnode to avoid reversals. */
856	vfsp = NULL;
857	if ((fsflags & MNT_UPDATE) == 0) {
858		/* Don't try to load KLDs if we're mounting the root. */
859		if (fsflags & MNT_ROOTFS)
860			vfsp = vfs_byname(fstype);
861		else
862			vfsp = vfs_byname_kld(fstype, td, &error);
863		if (vfsp == NULL)
864			return (ENODEV);
865		if (jailed(td->td_ucred) && !(vfsp->vfc_flags & VFCF_JAIL))
866			return (EPERM);
867	}
868	/*
869	 * Get vnode to be covered
870	 */
871	NDINIT(&nd, LOOKUP, FOLLOW | LOCKLEAF | AUDITVNODE1, UIO_SYSSPACE,
872	    fspath, td);
873	if ((error = namei(&nd)) != 0)
874		return (error);
875	NDFREE(&nd, NDF_ONLY_PNBUF);
876	vp = nd.ni_vp;
877	if (fsflags & MNT_UPDATE) {
878		if ((vp->v_vflag & VV_ROOT) == 0) {
879			vput(vp);
880			return (EINVAL);
881		}
882		mp = vp->v_mount;
883		MNT_ILOCK(mp);
884		flag = mp->mnt_flag;
885		/*
886		 * We only allow the filesystem to be reloaded if it
887		 * is currently mounted read-only.
888		 */
889		if ((fsflags & MNT_RELOAD) &&
890		    ((mp->mnt_flag & MNT_RDONLY) == 0)) {
891			MNT_IUNLOCK(mp);
892			vput(vp);
893			return (EOPNOTSUPP);	/* Needs translation */
894		}
895		MNT_IUNLOCK(mp);
896		/*
897		 * Only privileged root, or (if MNT_USER is set) the user that
898		 * did the original mount is permitted to update it.
899		 */
900		error = vfs_suser(mp, td);
901		if (error) {
902			vput(vp);
903			return (error);
904		}
905		if (vfs_busy(mp, MBF_NOWAIT)) {
906			vput(vp);
907			return (EBUSY);
908		}
909		VI_LOCK(vp);
910		if ((vp->v_iflag & VI_MOUNT) != 0 ||
911		    vp->v_mountedhere != NULL) {
912			VI_UNLOCK(vp);
913			vfs_unbusy(mp);
914			vput(vp);
915			return (EBUSY);
916		}
917		vp->v_iflag |= VI_MOUNT;
918		VI_UNLOCK(vp);
919		MNT_ILOCK(mp);
920		mp->mnt_flag |= fsflags &
921		    (MNT_RELOAD | MNT_FORCE | MNT_UPDATE | MNT_SNAPSHOT | MNT_ROOTFS);
922		MNT_IUNLOCK(mp);
923		VOP_UNLOCK(vp, 0);
924		mp->mnt_optnew = fsdata;
925		vfs_mergeopts(mp->mnt_optnew, mp->mnt_opt);
926	} else {
927		/*
928		 * If the user is not root, ensure that they own the directory
929		 * onto which we are attempting to mount.
930		 */
931		error = VOP_GETATTR(vp, &va, td->td_ucred);
932		if (error) {
933			vput(vp);
934			return (error);
935		}
936		if (va.va_uid != td->td_ucred->cr_uid) {
937			error = priv_check_cred(td->td_ucred, PRIV_VFS_ADMIN,
938			    0);
939			if (error) {
940				vput(vp);
941				return (error);
942			}
943		}
944		error = vinvalbuf(vp, V_SAVE, 0, 0);
945		if (error != 0) {
946			vput(vp);
947			return (error);
948		}
949		if (vp->v_type != VDIR) {
950			vput(vp);
951			return (ENOTDIR);
952		}
953		VI_LOCK(vp);
954		if ((vp->v_iflag & VI_MOUNT) != 0 ||
955		    vp->v_mountedhere != NULL) {
956			VI_UNLOCK(vp);
957			vput(vp);
958			return (EBUSY);
959		}
960		vp->v_iflag |= VI_MOUNT;
961		VI_UNLOCK(vp);
962		VOP_UNLOCK(vp, 0);
963
964		/*
965		 * Allocate and initialize the filesystem.
966		 */
967		mp = vfs_mount_alloc(vp, vfsp, fspath, td->td_ucred);
968
969		/* XXXMAC: pass to vfs_mount_alloc? */
970		mp->mnt_optnew = fsdata;
971	}
972
973	/*
974	 * Set the mount level flags.
975	 */
976	MNT_ILOCK(mp);
977	mp->mnt_flag = (mp->mnt_flag & ~MNT_UPDATEMASK) |
978		(fsflags & (MNT_UPDATEMASK | MNT_FORCE | MNT_ROOTFS |
979			    MNT_RDONLY));
980	if ((mp->mnt_flag & MNT_ASYNC) == 0)
981		mp->mnt_kern_flag &= ~MNTK_ASYNC;
982	MNT_IUNLOCK(mp);
983	/*
984	 * Mount the filesystem.
985	 * XXX The final recipients of VFS_MOUNT just overwrite the ndp they
986	 * get.  No freeing of cn_pnbuf.
987	 */
988        error = VFS_MOUNT(mp);
989
990	/*
991	 * Process the export option only if we are
992	 * updating mount options.
993	 */
994	if (!error && (fsflags & MNT_UPDATE)) {
995		if (vfs_copyopt(mp->mnt_optnew, "export", &export,
996		    sizeof(export)) == 0)
997			error = vfs_export(mp, &export);
998		else if (vfs_copyopt(mp->mnt_optnew, "export", &oexport,
999			sizeof(oexport)) == 0) {
1000			export.ex_flags = oexport.ex_flags;
1001			export.ex_root = oexport.ex_root;
1002			export.ex_anon = oexport.ex_anon;
1003			export.ex_addr = oexport.ex_addr;
1004			export.ex_addrlen = oexport.ex_addrlen;
1005			export.ex_mask = oexport.ex_mask;
1006			export.ex_masklen = oexport.ex_masklen;
1007			export.ex_indexfile = oexport.ex_indexfile;
1008			export.ex_numsecflavors = 0;
1009			error = vfs_export(mp, &export);
1010		}
1011	}
1012
1013	if (!error) {
1014		if (mp->mnt_opt != NULL)
1015			vfs_freeopts(mp->mnt_opt);
1016		mp->mnt_opt = mp->mnt_optnew;
1017		(void)VFS_STATFS(mp, &mp->mnt_stat);
1018	}
1019	/*
1020	 * Prevent external consumers of mount options from reading
1021	 * mnt_optnew.
1022	*/
1023	mp->mnt_optnew = NULL;
1024	if (mp->mnt_flag & MNT_UPDATE) {
1025		MNT_ILOCK(mp);
1026		if (error)
1027			mp->mnt_flag = (mp->mnt_flag & MNT_QUOTA) |
1028				(flag & ~MNT_QUOTA);
1029		else
1030			mp->mnt_flag &=	~(MNT_UPDATE | MNT_RELOAD |
1031					  MNT_FORCE | MNT_SNAPSHOT);
1032		if ((mp->mnt_flag & MNT_ASYNC) != 0 && mp->mnt_noasync == 0)
1033			mp->mnt_kern_flag |= MNTK_ASYNC;
1034		else
1035			mp->mnt_kern_flag &= ~MNTK_ASYNC;
1036		MNT_IUNLOCK(mp);
1037		if ((mp->mnt_flag & MNT_RDONLY) == 0) {
1038			if (mp->mnt_syncer == NULL)
1039				error = vfs_allocate_syncvnode(mp);
1040		} else {
1041			if (mp->mnt_syncer != NULL)
1042				vrele(mp->mnt_syncer);
1043			mp->mnt_syncer = NULL;
1044		}
1045		vfs_unbusy(mp);
1046		VI_LOCK(vp);
1047		vp->v_iflag &= ~VI_MOUNT;
1048		VI_UNLOCK(vp);
1049		vrele(vp);
1050		return (error);
1051	}
1052	MNT_ILOCK(mp);
1053	if ((mp->mnt_flag & MNT_ASYNC) != 0 && mp->mnt_noasync == 0)
1054		mp->mnt_kern_flag |= MNTK_ASYNC;
1055	else
1056		mp->mnt_kern_flag &= ~MNTK_ASYNC;
1057	MNT_IUNLOCK(mp);
1058	vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
1059	/*
1060	 * Put the new filesystem on the mount list after root.
1061	 */
1062	cache_purge(vp);
1063	VI_LOCK(vp);
1064	vp->v_iflag &= ~VI_MOUNT;
1065	VI_UNLOCK(vp);
1066	if (!error) {
1067		struct vnode *newdp;
1068
1069		vp->v_mountedhere = mp;
1070		mtx_lock(&mountlist_mtx);
1071		TAILQ_INSERT_TAIL(&mountlist, mp, mnt_list);
1072		mtx_unlock(&mountlist_mtx);
1073		vfs_event_signal(NULL, VQ_MOUNT, 0);
1074		if (VFS_ROOT(mp, LK_EXCLUSIVE, &newdp))
1075			panic("mount: lost mount");
1076		VOP_UNLOCK(newdp, 0);
1077		VOP_UNLOCK(vp, 0);
1078		mountcheckdirs(vp, newdp);
1079		vrele(newdp);
1080		if ((mp->mnt_flag & MNT_RDONLY) == 0)
1081			error = vfs_allocate_syncvnode(mp);
1082		vfs_unbusy(mp);
1083		if (error)
1084			vrele(vp);
1085	} else {
1086		vfs_unbusy(mp);
1087		vfs_mount_destroy(mp);
1088		vput(vp);
1089	}
1090	return (error);
1091}
1092
1093/*
1094 * Unmount a filesystem.
1095 *
1096 * Note: unmount takes a path to the vnode mounted on as argument, not
1097 * special file (as before).
1098 */
1099#ifndef _SYS_SYSPROTO_H_
1100struct unmount_args {
1101	char	*path;
1102	int	flags;
1103};
1104#endif
1105/* ARGSUSED */
1106int
1107unmount(td, uap)
1108	struct thread *td;
1109	register struct unmount_args /* {
1110		char *path;
1111		int flags;
1112	} */ *uap;
1113{
1114	struct mount *mp;
1115	char *pathbuf;
1116	int error, id0, id1;
1117
1118	AUDIT_ARG_VALUE(uap->flags);
1119	if (jailed(td->td_ucred) || usermount == 0) {
1120		error = priv_check(td, PRIV_VFS_UNMOUNT);
1121		if (error)
1122			return (error);
1123	}
1124
1125	pathbuf = malloc(MNAMELEN, M_TEMP, M_WAITOK);
1126	error = copyinstr(uap->path, pathbuf, MNAMELEN, NULL);
1127	if (error) {
1128		free(pathbuf, M_TEMP);
1129		return (error);
1130	}
1131	mtx_lock(&Giant);
1132	if (uap->flags & MNT_BYFSID) {
1133		AUDIT_ARG_TEXT(pathbuf);
1134		/* Decode the filesystem ID. */
1135		if (sscanf(pathbuf, "FSID:%d:%d", &id0, &id1) != 2) {
1136			mtx_unlock(&Giant);
1137			free(pathbuf, M_TEMP);
1138			return (EINVAL);
1139		}
1140
1141		mtx_lock(&mountlist_mtx);
1142		TAILQ_FOREACH_REVERSE(mp, &mountlist, mntlist, mnt_list) {
1143			if (mp->mnt_stat.f_fsid.val[0] == id0 &&
1144			    mp->mnt_stat.f_fsid.val[1] == id1)
1145				break;
1146		}
1147		mtx_unlock(&mountlist_mtx);
1148	} else {
1149		AUDIT_ARG_UPATH1(td, pathbuf);
1150		mtx_lock(&mountlist_mtx);
1151		TAILQ_FOREACH_REVERSE(mp, &mountlist, mntlist, mnt_list) {
1152			if (strcmp(mp->mnt_stat.f_mntonname, pathbuf) == 0)
1153				break;
1154		}
1155		mtx_unlock(&mountlist_mtx);
1156	}
1157	free(pathbuf, M_TEMP);
1158	if (mp == NULL) {
1159		/*
1160		 * Previously we returned ENOENT for a nonexistent path and
1161		 * EINVAL for a non-mountpoint.  We cannot tell these apart
1162		 * now, so in the !MNT_BYFSID case return the more likely
1163		 * EINVAL for compatibility.
1164		 */
1165		mtx_unlock(&Giant);
1166		return ((uap->flags & MNT_BYFSID) ? ENOENT : EINVAL);
1167	}
1168
1169	/*
1170	 * Don't allow unmounting the root filesystem.
1171	 */
1172	if (mp->mnt_flag & MNT_ROOTFS) {
1173		mtx_unlock(&Giant);
1174		return (EINVAL);
1175	}
1176	error = dounmount(mp, uap->flags, td);
1177	mtx_unlock(&Giant);
1178	return (error);
1179}
1180
1181/*
1182 * Do the actual filesystem unmount.
1183 */
1184int
1185dounmount(mp, flags, td)
1186	struct mount *mp;
1187	int flags;
1188	struct thread *td;
1189{
1190	struct vnode *coveredvp, *fsrootvp;
1191	int error;
1192	int async_flag;
1193	int mnt_gen_r;
1194
1195	mtx_assert(&Giant, MA_OWNED);
1196
1197	if ((coveredvp = mp->mnt_vnodecovered) != NULL) {
1198		mnt_gen_r = mp->mnt_gen;
1199		VI_LOCK(coveredvp);
1200		vholdl(coveredvp);
1201		vn_lock(coveredvp, LK_EXCLUSIVE | LK_INTERLOCK | LK_RETRY);
1202		vdrop(coveredvp);
1203		/*
1204		 * Check for mp being unmounted while waiting for the
1205		 * covered vnode lock.
1206		 */
1207		if (coveredvp->v_mountedhere != mp ||
1208		    coveredvp->v_mountedhere->mnt_gen != mnt_gen_r) {
1209			VOP_UNLOCK(coveredvp, 0);
1210			return (EBUSY);
1211		}
1212	}
1213	/*
1214	 * Only privileged root, or (if MNT_USER is set) the user that did the
1215	 * original mount is permitted to unmount this filesystem.
1216	 */
1217	error = vfs_suser(mp, td);
1218	if (error) {
1219		if (coveredvp)
1220			VOP_UNLOCK(coveredvp, 0);
1221		return (error);
1222	}
1223
1224	MNT_ILOCK(mp);
1225	if (mp->mnt_kern_flag & MNTK_UNMOUNT) {
1226		MNT_IUNLOCK(mp);
1227		if (coveredvp)
1228			VOP_UNLOCK(coveredvp, 0);
1229		return (EBUSY);
1230	}
1231	mp->mnt_kern_flag |= MNTK_UNMOUNT | MNTK_NOINSMNTQ;
1232	/* Allow filesystems to detect that a forced unmount is in progress. */
1233	if (flags & MNT_FORCE)
1234		mp->mnt_kern_flag |= MNTK_UNMOUNTF;
1235	error = 0;
1236	if (mp->mnt_lockref) {
1237		if ((flags & MNT_FORCE) == 0) {
1238			mp->mnt_kern_flag &= ~(MNTK_UNMOUNT | MNTK_NOINSMNTQ |
1239			    MNTK_UNMOUNTF);
1240			if (mp->mnt_kern_flag & MNTK_MWAIT) {
1241				mp->mnt_kern_flag &= ~MNTK_MWAIT;
1242				wakeup(mp);
1243			}
1244			MNT_IUNLOCK(mp);
1245			if (coveredvp)
1246				VOP_UNLOCK(coveredvp, 0);
1247			return (EBUSY);
1248		}
1249		mp->mnt_kern_flag |= MNTK_DRAINING;
1250		error = msleep(&mp->mnt_lockref, MNT_MTX(mp), PVFS,
1251		    "mount drain", 0);
1252	}
1253	MNT_IUNLOCK(mp);
1254	KASSERT(mp->mnt_lockref == 0,
1255	    ("%s: invalid lock refcount in the drain path @ %s:%d",
1256	    __func__, __FILE__, __LINE__));
1257	KASSERT(error == 0,
1258	    ("%s: invalid return value for msleep in the drain path @ %s:%d",
1259	    __func__, __FILE__, __LINE__));
1260	vn_start_write(NULL, &mp, V_WAIT);
1261
1262	if (mp->mnt_flag & MNT_EXPUBLIC)
1263		vfs_setpublicfs(NULL, NULL, NULL);
1264
1265	vfs_msync(mp, MNT_WAIT);
1266	MNT_ILOCK(mp);
1267	async_flag = mp->mnt_flag & MNT_ASYNC;
1268	mp->mnt_flag &= ~MNT_ASYNC;
1269	mp->mnt_kern_flag &= ~MNTK_ASYNC;
1270	MNT_IUNLOCK(mp);
1271	cache_purgevfs(mp);	/* remove cache entries for this file sys */
1272	if (mp->mnt_syncer != NULL)
1273		vrele(mp->mnt_syncer);
1274	/*
1275	 * For forced unmounts, move process cdir/rdir refs on the fs root
1276	 * vnode to the covered vnode.  For non-forced unmounts we want
1277	 * such references to cause an EBUSY error.
1278	 */
1279	if ((flags & MNT_FORCE) &&
1280	    VFS_ROOT(mp, LK_EXCLUSIVE, &fsrootvp) == 0) {
1281		if (mp->mnt_vnodecovered != NULL)
1282			mountcheckdirs(fsrootvp, mp->mnt_vnodecovered);
1283		if (fsrootvp == rootvnode) {
1284			vrele(rootvnode);
1285			rootvnode = NULL;
1286		}
1287		vput(fsrootvp);
1288	}
1289	if (((mp->mnt_flag & MNT_RDONLY) ||
1290	     (error = VFS_SYNC(mp, MNT_WAIT)) == 0) || (flags & MNT_FORCE) != 0)
1291		error = VFS_UNMOUNT(mp, flags);
1292	vn_finished_write(mp);
1293	/*
1294	 * If we failed to flush the dirty blocks for this mount point,
1295	 * undo all the cdir/rdir and rootvnode changes we made above.
1296	 * Unless we failed to do so because the device is reporting that
1297	 * it doesn't exist anymore.
1298	 */
1299	if (error && error != ENXIO) {
1300		if ((flags & MNT_FORCE) &&
1301		    VFS_ROOT(mp, LK_EXCLUSIVE, &fsrootvp) == 0) {
1302			if (mp->mnt_vnodecovered != NULL)
1303				mountcheckdirs(mp->mnt_vnodecovered, fsrootvp);
1304			if (rootvnode == NULL) {
1305				rootvnode = fsrootvp;
1306				vref(rootvnode);
1307			}
1308			vput(fsrootvp);
1309		}
1310		MNT_ILOCK(mp);
1311		mp->mnt_kern_flag &= ~MNTK_NOINSMNTQ;
1312		if ((mp->mnt_flag & MNT_RDONLY) == 0 && mp->mnt_syncer == NULL) {
1313			MNT_IUNLOCK(mp);
1314			(void) vfs_allocate_syncvnode(mp);
1315			MNT_ILOCK(mp);
1316		}
1317		mp->mnt_kern_flag &= ~(MNTK_UNMOUNT | MNTK_UNMOUNTF);
1318		mp->mnt_flag |= async_flag;
1319		if ((mp->mnt_flag & MNT_ASYNC) != 0 && mp->mnt_noasync == 0)
1320			mp->mnt_kern_flag |= MNTK_ASYNC;
1321		if (mp->mnt_kern_flag & MNTK_MWAIT) {
1322			mp->mnt_kern_flag &= ~MNTK_MWAIT;
1323			wakeup(mp);
1324		}
1325		MNT_IUNLOCK(mp);
1326		if (coveredvp)
1327			VOP_UNLOCK(coveredvp, 0);
1328		return (error);
1329	}
1330	mtx_lock(&mountlist_mtx);
1331	TAILQ_REMOVE(&mountlist, mp, mnt_list);
1332	mtx_unlock(&mountlist_mtx);
1333	if (coveredvp != NULL) {
1334		coveredvp->v_mountedhere = NULL;
1335		vput(coveredvp);
1336	}
1337	vfs_event_signal(NULL, VQ_UNMOUNT, 0);
1338	vfs_mount_destroy(mp);
1339	return (0);
1340}
1341
1342/*
1343 * ---------------------------------------------------------------------
1344 * Mounting of root filesystem
1345 *
1346 */
1347
1348struct root_hold_token {
1349	const char			*who;
1350	LIST_ENTRY(root_hold_token)	list;
1351};
1352
1353static LIST_HEAD(, root_hold_token)	root_holds =
1354    LIST_HEAD_INITIALIZER(root_holds);
1355
1356static int root_mount_complete;
1357
1358/*
1359 * Hold root mount.
1360 */
1361struct root_hold_token *
1362root_mount_hold(const char *identifier)
1363{
1364	struct root_hold_token *h;
1365
1366	if (root_mounted())
1367		return (NULL);
1368
1369	h = malloc(sizeof *h, M_DEVBUF, M_ZERO | M_WAITOK);
1370	h->who = identifier;
1371	mtx_lock(&mountlist_mtx);
1372	LIST_INSERT_HEAD(&root_holds, h, list);
1373	mtx_unlock(&mountlist_mtx);
1374	return (h);
1375}
1376
1377/*
1378 * Release root mount.
1379 */
1380void
1381root_mount_rel(struct root_hold_token *h)
1382{
1383
1384	if (h == NULL)
1385		return;
1386	mtx_lock(&mountlist_mtx);
1387	LIST_REMOVE(h, list);
1388	wakeup(&root_holds);
1389	mtx_unlock(&mountlist_mtx);
1390	free(h, M_DEVBUF);
1391}
1392
1393/*
1394 * Wait for all subsystems to release root mount.
1395 */
1396static void
1397root_mount_prepare(void)
1398{
1399	struct root_hold_token *h;
1400	struct timeval lastfail;
1401	int curfail = 0;
1402
1403	for (;;) {
1404		DROP_GIANT();
1405		g_waitidle();
1406		PICKUP_GIANT();
1407		mtx_lock(&mountlist_mtx);
1408		if (LIST_EMPTY(&root_holds)) {
1409			mtx_unlock(&mountlist_mtx);
1410			break;
1411		}
1412		if (ppsratecheck(&lastfail, &curfail, 1)) {
1413			printf("Root mount waiting for:");
1414			LIST_FOREACH(h, &root_holds, list)
1415				printf(" %s", h->who);
1416			printf("\n");
1417		}
1418		msleep(&root_holds, &mountlist_mtx, PZERO | PDROP, "roothold",
1419		    hz);
1420	}
1421}
1422
1423/*
1424 * Root was mounted, share the good news.
1425 */
1426static void
1427root_mount_done(void)
1428{
1429
1430	/* Keep prison0's root in sync with the global rootvnode. */
1431	mtx_lock(&prison0.pr_mtx);
1432	prison0.pr_root = rootvnode;
1433	vref(prison0.pr_root);
1434	mtx_unlock(&prison0.pr_mtx);
1435	/*
1436	 * Use a mutex to prevent the wakeup being missed and waiting for
1437	 * an extra 1 second sleep.
1438	 */
1439	mtx_lock(&mountlist_mtx);
1440	root_mount_complete = 1;
1441	wakeup(&root_mount_complete);
1442	mtx_unlock(&mountlist_mtx);
1443}
1444
1445/*
1446 * Return true if root is already mounted.
1447 */
1448int
1449root_mounted(void)
1450{
1451
1452	/* No mutex is acquired here because int stores are atomic. */
1453	return (root_mount_complete);
1454}
1455
1456/*
1457 * Wait until root is mounted.
1458 */
1459void
1460root_mount_wait(void)
1461{
1462
1463	/*
1464	 * Panic on an obvious deadlock - the function can't be called from
1465	 * a thread which is doing the whole SYSINIT stuff.
1466	 */
1467	KASSERT(curthread->td_proc->p_pid != 0,
1468	    ("root_mount_wait: cannot be called from the swapper thread"));
1469	mtx_lock(&mountlist_mtx);
1470	while (!root_mount_complete) {
1471		msleep(&root_mount_complete, &mountlist_mtx, PZERO, "rootwait",
1472		    hz);
1473	}
1474	mtx_unlock(&mountlist_mtx);
1475}
1476
1477static void
1478set_rootvnode()
1479{
1480	struct proc *p;
1481
1482	if (VFS_ROOT(TAILQ_FIRST(&mountlist), LK_EXCLUSIVE, &rootvnode))
1483		panic("Cannot find root vnode");
1484
1485	VOP_UNLOCK(rootvnode, 0);
1486
1487	p = curthread->td_proc;
1488	FILEDESC_XLOCK(p->p_fd);
1489
1490	if (p->p_fd->fd_cdir != NULL)
1491		vrele(p->p_fd->fd_cdir);
1492	p->p_fd->fd_cdir = rootvnode;
1493	VREF(rootvnode);
1494
1495	if (p->p_fd->fd_rdir != NULL)
1496		vrele(p->p_fd->fd_rdir);
1497	p->p_fd->fd_rdir = rootvnode;
1498	VREF(rootvnode);
1499
1500	FILEDESC_XUNLOCK(p->p_fd);
1501
1502	EVENTHANDLER_INVOKE(mountroot);
1503}
1504
1505/*
1506 * Mount /devfs as our root filesystem, but do not put it on the mountlist
1507 * yet.  Create a /dev -> / symlink so that absolute pathnames will lookup.
1508 */
1509
1510static void
1511devfs_first(void)
1512{
1513	struct thread *td = curthread;
1514	struct vfsoptlist *opts;
1515	struct vfsconf *vfsp;
1516	struct mount *mp = NULL;
1517	int error;
1518
1519	vfsp = vfs_byname("devfs");
1520	KASSERT(vfsp != NULL, ("Could not find devfs by name"));
1521	if (vfsp == NULL)
1522		return;
1523
1524	mp = vfs_mount_alloc(NULLVP, vfsp, "/dev", td->td_ucred);
1525
1526	error = VFS_MOUNT(mp);
1527	KASSERT(error == 0, ("VFS_MOUNT(devfs) failed %d", error));
1528	if (error)
1529		return;
1530
1531	opts = malloc(sizeof(struct vfsoptlist), M_MOUNT, M_WAITOK);
1532	TAILQ_INIT(opts);
1533	mp->mnt_opt = opts;
1534
1535	mtx_lock(&mountlist_mtx);
1536	TAILQ_INSERT_HEAD(&mountlist, mp, mnt_list);
1537	mtx_unlock(&mountlist_mtx);
1538
1539	set_rootvnode();
1540
1541	error = kern_symlink(td, "/", "dev", UIO_SYSSPACE);
1542	if (error)
1543		printf("kern_symlink /dev -> / returns %d\n", error);
1544}
1545
1546/*
1547 * Surgically move our devfs to be mounted on /dev.
1548 */
1549
1550static void
1551devfs_fixup(struct thread *td)
1552{
1553	struct nameidata nd;
1554	int error;
1555	struct vnode *vp, *dvp;
1556	struct mount *mp;
1557
1558	/* Remove our devfs mount from the mountlist and purge the cache */
1559	mtx_lock(&mountlist_mtx);
1560	mp = TAILQ_FIRST(&mountlist);
1561	TAILQ_REMOVE(&mountlist, mp, mnt_list);
1562	mtx_unlock(&mountlist_mtx);
1563	cache_purgevfs(mp);
1564
1565	VFS_ROOT(mp, LK_EXCLUSIVE, &dvp);
1566	VI_LOCK(dvp);
1567	dvp->v_iflag &= ~VI_MOUNT;
1568	VI_UNLOCK(dvp);
1569	dvp->v_mountedhere = NULL;
1570
1571	/* Set up the real rootvnode, and purge the cache */
1572	TAILQ_FIRST(&mountlist)->mnt_vnodecovered = NULL;
1573	set_rootvnode();
1574	cache_purgevfs(rootvnode->v_mount);
1575
1576	NDINIT(&nd, LOOKUP, FOLLOW | LOCKLEAF, UIO_SYSSPACE, "/dev", td);
1577	error = namei(&nd);
1578	if (error) {
1579		printf("Lookup of /dev for devfs, error: %d\n", error);
1580		return;
1581	}
1582	NDFREE(&nd, NDF_ONLY_PNBUF);
1583	vp = nd.ni_vp;
1584	if (vp->v_type != VDIR) {
1585		vput(vp);
1586	}
1587	error = vinvalbuf(vp, V_SAVE, 0, 0);
1588	if (error) {
1589		vput(vp);
1590	}
1591	cache_purge(vp);
1592	mp->mnt_vnodecovered = vp;
1593	vp->v_mountedhere = mp;
1594	mtx_lock(&mountlist_mtx);
1595	TAILQ_INSERT_TAIL(&mountlist, mp, mnt_list);
1596	mtx_unlock(&mountlist_mtx);
1597	VOP_UNLOCK(vp, 0);
1598	vput(dvp);
1599	vfs_unbusy(mp);
1600
1601	/* Unlink the no longer needed /dev/dev -> / symlink */
1602	kern_unlink(td, "/dev/dev", UIO_SYSSPACE);
1603}
1604
1605/*
1606 * Report errors during filesystem mounting.
1607 */
1608void
1609vfs_mount_error(struct mount *mp, const char *fmt, ...)
1610{
1611	struct vfsoptlist *moptlist = mp->mnt_optnew;
1612	va_list ap;
1613	int error, len;
1614	char *errmsg;
1615
1616	error = vfs_getopt(moptlist, "errmsg", (void **)&errmsg, &len);
1617	if (error || errmsg == NULL || len <= 0)
1618		return;
1619
1620	va_start(ap, fmt);
1621	vsnprintf(errmsg, (size_t)len, fmt, ap);
1622	va_end(ap);
1623}
1624
1625void
1626vfs_opterror(struct vfsoptlist *opts, const char *fmt, ...)
1627{
1628	va_list ap;
1629	int error, len;
1630	char *errmsg;
1631
1632	error = vfs_getopt(opts, "errmsg", (void **)&errmsg, &len);
1633	if (error || errmsg == NULL || len <= 0)
1634		return;
1635
1636	va_start(ap, fmt);
1637	vsnprintf(errmsg, (size_t)len, fmt, ap);
1638	va_end(ap);
1639}
1640
1641/*
1642 * Find and mount the root filesystem
1643 */
1644void
1645vfs_mountroot(void)
1646{
1647	char *cp, *cpt, *options, *tmpdev;
1648	int error, i, asked = 0;
1649
1650	options = NULL;
1651
1652	root_mount_prepare();
1653
1654	mount_zone = uma_zcreate("Mountpoints", sizeof(struct mount),
1655	    NULL, NULL, mount_init, mount_fini,
1656	    UMA_ALIGN_PTR, UMA_ZONE_NOFREE);
1657	devfs_first();
1658
1659	/*
1660	 * We are booted with instructions to prompt for the root filesystem.
1661	 */
1662	if (boothowto & RB_ASKNAME) {
1663		if (!vfs_mountroot_ask())
1664			goto mounted;
1665		asked = 1;
1666	}
1667
1668	options = getenv("vfs.root.mountfrom.options");
1669
1670	/*
1671	 * The root filesystem information is compiled in, and we are
1672	 * booted with instructions to use it.
1673	 */
1674	if (ctrootdevname != NULL && (boothowto & RB_DFLTROOT)) {
1675		if (!vfs_mountroot_try(ctrootdevname, options))
1676			goto mounted;
1677		ctrootdevname = NULL;
1678	}
1679
1680	/*
1681	 * We've been given the generic "use CDROM as root" flag.  This is
1682	 * necessary because one media may be used in many different
1683	 * devices, so we need to search for them.
1684	 */
1685	if (boothowto & RB_CDROM) {
1686		for (i = 0; cdrom_rootdevnames[i] != NULL; i++) {
1687			if (!vfs_mountroot_try(cdrom_rootdevnames[i], options))
1688				goto mounted;
1689		}
1690	}
1691
1692	/*
1693	 * Try to use the value read by the loader from /etc/fstab, or
1694	 * supplied via some other means.  This is the preferred
1695	 * mechanism.
1696	 */
1697	cp = getenv("vfs.root.mountfrom");
1698	if (cp != NULL) {
1699		cpt = cp;
1700		while ((tmpdev = strsep(&cpt, " \t")) != NULL) {
1701			error = vfs_mountroot_try(tmpdev, options);
1702			if (error == 0) {
1703				freeenv(cp);
1704				goto mounted;
1705			}
1706		}
1707		freeenv(cp);
1708	}
1709
1710	/*
1711	 * Try values that may have been computed by code during boot
1712	 */
1713	if (!vfs_mountroot_try(rootdevnames[0], options))
1714		goto mounted;
1715	if (!vfs_mountroot_try(rootdevnames[1], options))
1716		goto mounted;
1717
1718	/*
1719	 * If we (still) have a compiled-in default, try it.
1720	 */
1721	if (ctrootdevname != NULL)
1722		if (!vfs_mountroot_try(ctrootdevname, options))
1723			goto mounted;
1724	/*
1725	 * Everything so far has failed, prompt on the console if we haven't
1726	 * already tried that.
1727	 */
1728	if (!asked)
1729		if (!vfs_mountroot_ask())
1730			goto mounted;
1731
1732	panic("Root mount failed, startup aborted.");
1733
1734mounted:
1735	root_mount_done();
1736	freeenv(options);
1737}
1738
1739static struct mntarg *
1740parse_mountroot_options(struct mntarg *ma, const char *options)
1741{
1742	char *p;
1743	char *name, *name_arg;
1744	char *val, *val_arg;
1745	char *opts;
1746
1747	if (options == NULL || options[0] == '\0')
1748		return (ma);
1749
1750	p = opts = strdup(options, M_MOUNT);
1751	if (opts == NULL) {
1752		return (ma);
1753	}
1754
1755	while((name = strsep(&p, ",")) != NULL) {
1756		if (name[0] == '\0')
1757			break;
1758
1759		val = strchr(name, '=');
1760		if (val != NULL) {
1761			*val = '\0';
1762			++val;
1763		}
1764		if( strcmp(name, "rw") == 0 ||
1765		    strcmp(name, "noro") == 0) {
1766			/*
1767			 * The first time we mount the root file system,
1768			 * we need to mount 'ro', so We need to ignore
1769			 * 'rw' and 'noro' mount options.
1770			 */
1771			continue;
1772		}
1773		name_arg = strdup(name, M_MOUNT);
1774		val_arg = NULL;
1775		if (val != NULL)
1776			val_arg = strdup(val, M_MOUNT);
1777
1778		ma = mount_arg(ma, name_arg, val_arg,
1779		    (val_arg != NULL ? -1 : 0));
1780	}
1781	free(opts, M_MOUNT);
1782	return (ma);
1783}
1784
1785/*
1786 * Mount (mountfrom) as the root filesystem.
1787 */
1788static int
1789vfs_mountroot_try(const char *mountfrom, const char *options)
1790{
1791	struct mount	*mp;
1792	struct mntarg	*ma;
1793	char		*vfsname, *path;
1794	time_t		timebase;
1795	int		error;
1796	char		patt[32];
1797	char		errmsg[255];
1798
1799	vfsname = NULL;
1800	path    = NULL;
1801	mp      = NULL;
1802	ma	= NULL;
1803	error   = EINVAL;
1804	bzero(errmsg, sizeof(errmsg));
1805
1806	if (mountfrom == NULL)
1807		return (error);		/* don't complain */
1808	printf("Trying to mount root from %s\n", mountfrom);
1809
1810	/* parse vfs name and path */
1811	vfsname = malloc(MFSNAMELEN, M_MOUNT, M_WAITOK);
1812	path = malloc(MNAMELEN, M_MOUNT, M_WAITOK);
1813	vfsname[0] = path[0] = 0;
1814	sprintf(patt, "%%%d[a-z0-9]:%%%ds", MFSNAMELEN, MNAMELEN);
1815	if (sscanf(mountfrom, patt, vfsname, path) < 1)
1816		goto out;
1817
1818	if (path[0] == '\0')
1819		strcpy(path, ROOTNAME);
1820
1821	ma = mount_arg(ma, "fstype", vfsname, -1);
1822	ma = mount_arg(ma, "fspath", "/", -1);
1823	ma = mount_arg(ma, "from", path, -1);
1824	ma = mount_arg(ma, "errmsg", errmsg, sizeof(errmsg));
1825	ma = mount_arg(ma, "ro", NULL, 0);
1826	ma = parse_mountroot_options(ma, options);
1827	error = kernel_mount(ma, MNT_ROOTFS);
1828
1829	if (error == 0) {
1830		/*
1831		 * We mount devfs prior to mounting the / FS, so the first
1832		 * entry will typically be devfs.
1833		 */
1834		mp = TAILQ_FIRST(&mountlist);
1835		KASSERT(mp != NULL, ("%s: mountlist is empty", __func__));
1836
1837		/*
1838		 * Iterate over all currently mounted file systems and use
1839		 * the time stamp found to check and/or initialize the RTC.
1840		 * Typically devfs has no time stamp and the only other FS
1841		 * is the actual / FS.
1842		 * Call inittodr() only once and pass it the largest of the
1843		 * timestamps we encounter.
1844		 */
1845		timebase = 0;
1846		do {
1847			if (mp->mnt_time > timebase)
1848				timebase = mp->mnt_time;
1849			mp = TAILQ_NEXT(mp, mnt_list);
1850		} while (mp != NULL);
1851		inittodr(timebase);
1852
1853		devfs_fixup(curthread);
1854	}
1855
1856	if (error != 0 ) {
1857		printf("ROOT MOUNT ERROR: %s\n", errmsg);
1858		printf("If you have invalid mount options, reboot, and ");
1859		printf("first try the following from\n");
1860		printf("the loader prompt:\n\n");
1861		printf("     set vfs.root.mountfrom.options=rw\n\n");
1862		printf("and then remove invalid mount options from ");
1863		printf("/etc/fstab.\n\n");
1864	}
1865out:
1866	free(path, M_MOUNT);
1867	free(vfsname, M_MOUNT);
1868	return (error);
1869}
1870
1871/*
1872 * ---------------------------------------------------------------------
1873 * Interactive root filesystem selection code.
1874 */
1875
1876static int
1877vfs_mountroot_ask(void)
1878{
1879	char name[128];
1880	char *mountfrom;
1881	char *options;
1882
1883	for(;;) {
1884		printf("Loader variables:\n");
1885		printf("vfs.root.mountfrom=");
1886		mountfrom = getenv("vfs.root.mountfrom");
1887		if (mountfrom != NULL) {
1888			printf("%s", mountfrom);
1889		}
1890		printf("\n");
1891		printf("vfs.root.mountfrom.options=");
1892		options = getenv("vfs.root.mountfrom.options");
1893		if (options != NULL) {
1894			printf("%s", options);
1895		}
1896		printf("\n");
1897		freeenv(mountfrom);
1898		freeenv(options);
1899		printf("\nManual root filesystem specification:\n");
1900		printf("  <fstype>:<device>  Mount <device> using filesystem <fstype>\n");
1901		printf("                       eg. zfs:tank\n");
1902		printf("                       eg. ufs:/dev/da0s1a\n");
1903		printf("                       eg. cd9660:/dev/acd0\n");
1904		printf("                       This is equivalent to: ");
1905		printf("mount -t cd9660 /dev/acd0 /\n");
1906		printf("\n");
1907		printf("  ?                  List valid disk boot devices\n");
1908		printf("  <empty line>       Abort manual input\n");
1909		printf("\nmountroot> ");
1910		gets(name, sizeof(name), 1);
1911		if (name[0] == '\0')
1912			return (1);
1913		if (name[0] == '?') {
1914			printf("\nList of GEOM managed disk devices:\n  ");
1915			g_dev_print();
1916			continue;
1917		}
1918		if (!vfs_mountroot_try(name, NULL))
1919			return (0);
1920	}
1921}
1922
1923/*
1924 * ---------------------------------------------------------------------
1925 * Functions for querying mount options/arguments from filesystems.
1926 */
1927
1928/*
1929 * Check that no unknown options are given
1930 */
1931int
1932vfs_filteropt(struct vfsoptlist *opts, const char **legal)
1933{
1934	struct vfsopt *opt;
1935	char errmsg[255];
1936	const char **t, *p, *q;
1937	int ret = 0;
1938
1939	TAILQ_FOREACH(opt, opts, link) {
1940		p = opt->name;
1941		q = NULL;
1942		if (p[0] == 'n' && p[1] == 'o')
1943			q = p + 2;
1944		for(t = global_opts; *t != NULL; t++) {
1945			if (strcmp(*t, p) == 0)
1946				break;
1947			if (q != NULL) {
1948				if (strcmp(*t, q) == 0)
1949					break;
1950			}
1951		}
1952		if (*t != NULL)
1953			continue;
1954		for(t = legal; *t != NULL; t++) {
1955			if (strcmp(*t, p) == 0)
1956				break;
1957			if (q != NULL) {
1958				if (strcmp(*t, q) == 0)
1959					break;
1960			}
1961		}
1962		if (*t != NULL)
1963			continue;
1964		snprintf(errmsg, sizeof(errmsg),
1965		    "mount option <%s> is unknown", p);
1966		printf("%s\n", errmsg);
1967		ret = EINVAL;
1968	}
1969	if (ret != 0) {
1970		TAILQ_FOREACH(opt, opts, link) {
1971			if (strcmp(opt->name, "errmsg") == 0) {
1972				strncpy((char *)opt->value, errmsg, opt->len);
1973			}
1974		}
1975	}
1976	return (ret);
1977}
1978
1979/*
1980 * Get a mount option by its name.
1981 *
1982 * Return 0 if the option was found, ENOENT otherwise.
1983 * If len is non-NULL it will be filled with the length
1984 * of the option. If buf is non-NULL, it will be filled
1985 * with the address of the option.
1986 */
1987int
1988vfs_getopt(opts, name, buf, len)
1989	struct vfsoptlist *opts;
1990	const char *name;
1991	void **buf;
1992	int *len;
1993{
1994	struct vfsopt *opt;
1995
1996	KASSERT(opts != NULL, ("vfs_getopt: caller passed 'opts' as NULL"));
1997
1998	TAILQ_FOREACH(opt, opts, link) {
1999		if (strcmp(name, opt->name) == 0) {
2000			opt->seen = 1;
2001			if (len != NULL)
2002				*len = opt->len;
2003			if (buf != NULL)
2004				*buf = opt->value;
2005			return (0);
2006		}
2007	}
2008	return (ENOENT);
2009}
2010
2011int
2012vfs_getopt_pos(struct vfsoptlist *opts, const char *name)
2013{
2014	struct vfsopt *opt;
2015
2016	if (opts == NULL)
2017		return (-1);
2018
2019	TAILQ_FOREACH(opt, opts, link) {
2020		if (strcmp(name, opt->name) == 0) {
2021			opt->seen = 1;
2022			return (opt->pos);
2023		}
2024	}
2025	return (-1);
2026}
2027
2028char *
2029vfs_getopts(struct vfsoptlist *opts, const char *name, int *error)
2030{
2031	struct vfsopt *opt;
2032
2033	*error = 0;
2034	TAILQ_FOREACH(opt, opts, link) {
2035		if (strcmp(name, opt->name) != 0)
2036			continue;
2037		opt->seen = 1;
2038		if (opt->len == 0 ||
2039		    ((char *)opt->value)[opt->len - 1] != '\0') {
2040			*error = EINVAL;
2041			return (NULL);
2042		}
2043		return (opt->value);
2044	}
2045	*error = ENOENT;
2046	return (NULL);
2047}
2048
2049int
2050vfs_flagopt(struct vfsoptlist *opts, const char *name, u_int *w, u_int val)
2051{
2052	struct vfsopt *opt;
2053
2054	TAILQ_FOREACH(opt, opts, link) {
2055		if (strcmp(name, opt->name) == 0) {
2056			opt->seen = 1;
2057			if (w != NULL)
2058				*w |= val;
2059			return (1);
2060		}
2061	}
2062	if (w != NULL)
2063		*w &= ~val;
2064	return (0);
2065}
2066
2067int
2068vfs_scanopt(struct vfsoptlist *opts, const char *name, const char *fmt, ...)
2069{
2070	va_list ap;
2071	struct vfsopt *opt;
2072	int ret;
2073
2074	KASSERT(opts != NULL, ("vfs_getopt: caller passed 'opts' as NULL"));
2075
2076	TAILQ_FOREACH(opt, opts, link) {
2077		if (strcmp(name, opt->name) != 0)
2078			continue;
2079		opt->seen = 1;
2080		if (opt->len == 0 || opt->value == NULL)
2081			return (0);
2082		if (((char *)opt->value)[opt->len - 1] != '\0')
2083			return (0);
2084		va_start(ap, fmt);
2085		ret = vsscanf(opt->value, fmt, ap);
2086		va_end(ap);
2087		return (ret);
2088	}
2089	return (0);
2090}
2091
2092int
2093vfs_setopt(struct vfsoptlist *opts, const char *name, void *value, int len)
2094{
2095	struct vfsopt *opt;
2096
2097	TAILQ_FOREACH(opt, opts, link) {
2098		if (strcmp(name, opt->name) != 0)
2099			continue;
2100		opt->seen = 1;
2101		if (opt->value == NULL)
2102			opt->len = len;
2103		else {
2104			if (opt->len != len)
2105				return (EINVAL);
2106			bcopy(value, opt->value, len);
2107		}
2108		return (0);
2109	}
2110	return (ENOENT);
2111}
2112
2113int
2114vfs_setopt_part(struct vfsoptlist *opts, const char *name, void *value, int len)
2115{
2116	struct vfsopt *opt;
2117
2118	TAILQ_FOREACH(opt, opts, link) {
2119		if (strcmp(name, opt->name) != 0)
2120			continue;
2121		opt->seen = 1;
2122		if (opt->value == NULL)
2123			opt->len = len;
2124		else {
2125			if (opt->len < len)
2126				return (EINVAL);
2127			opt->len = len;
2128			bcopy(value, opt->value, len);
2129		}
2130		return (0);
2131	}
2132	return (ENOENT);
2133}
2134
2135int
2136vfs_setopts(struct vfsoptlist *opts, const char *name, const char *value)
2137{
2138	struct vfsopt *opt;
2139
2140	TAILQ_FOREACH(opt, opts, link) {
2141		if (strcmp(name, opt->name) != 0)
2142			continue;
2143		opt->seen = 1;
2144		if (opt->value == NULL)
2145			opt->len = strlen(value) + 1;
2146		else if (strlcpy(opt->value, value, opt->len) >= opt->len)
2147			return (EINVAL);
2148		return (0);
2149	}
2150	return (ENOENT);
2151}
2152
2153/*
2154 * Find and copy a mount option.
2155 *
2156 * The size of the buffer has to be specified
2157 * in len, if it is not the same length as the
2158 * mount option, EINVAL is returned.
2159 * Returns ENOENT if the option is not found.
2160 */
2161int
2162vfs_copyopt(opts, name, dest, len)
2163	struct vfsoptlist *opts;
2164	const char *name;
2165	void *dest;
2166	int len;
2167{
2168	struct vfsopt *opt;
2169
2170	KASSERT(opts != NULL, ("vfs_copyopt: caller passed 'opts' as NULL"));
2171
2172	TAILQ_FOREACH(opt, opts, link) {
2173		if (strcmp(name, opt->name) == 0) {
2174			opt->seen = 1;
2175			if (len != opt->len)
2176				return (EINVAL);
2177			bcopy(opt->value, dest, opt->len);
2178			return (0);
2179		}
2180	}
2181	return (ENOENT);
2182}
2183
2184/*
2185 * This is a helper function for filesystems to traverse their
2186 * vnodes.  See MNT_VNODE_FOREACH() in sys/mount.h
2187 */
2188
2189struct vnode *
2190__mnt_vnode_next(struct vnode **mvp, struct mount *mp)
2191{
2192	struct vnode *vp;
2193
2194	mtx_assert(MNT_MTX(mp), MA_OWNED);
2195
2196	KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
2197	if ((*mvp)->v_yield++ == 500) {
2198		MNT_IUNLOCK(mp);
2199		(*mvp)->v_yield = 0;
2200		uio_yield();
2201		MNT_ILOCK(mp);
2202	}
2203	vp = TAILQ_NEXT(*mvp, v_nmntvnodes);
2204	while (vp != NULL && vp->v_type == VMARKER)
2205		vp = TAILQ_NEXT(vp, v_nmntvnodes);
2206
2207	/* Check if we are done */
2208	if (vp == NULL) {
2209		__mnt_vnode_markerfree(mvp, mp);
2210		return (NULL);
2211	}
2212	TAILQ_REMOVE(&mp->mnt_nvnodelist, *mvp, v_nmntvnodes);
2213	TAILQ_INSERT_AFTER(&mp->mnt_nvnodelist, vp, *mvp, v_nmntvnodes);
2214	return (vp);
2215}
2216
2217struct vnode *
2218__mnt_vnode_first(struct vnode **mvp, struct mount *mp)
2219{
2220	struct vnode *vp;
2221
2222	mtx_assert(MNT_MTX(mp), MA_OWNED);
2223
2224	vp = TAILQ_FIRST(&mp->mnt_nvnodelist);
2225	while (vp != NULL && vp->v_type == VMARKER)
2226		vp = TAILQ_NEXT(vp, v_nmntvnodes);
2227
2228	/* Check if we are done */
2229	if (vp == NULL) {
2230		*mvp = NULL;
2231		return (NULL);
2232	}
2233	MNT_REF(mp);
2234	MNT_IUNLOCK(mp);
2235	*mvp = (struct vnode *) malloc(sizeof(struct vnode),
2236				       M_VNODE_MARKER,
2237				       M_WAITOK | M_ZERO);
2238	MNT_ILOCK(mp);
2239	(*mvp)->v_type = VMARKER;
2240
2241	vp = TAILQ_FIRST(&mp->mnt_nvnodelist);
2242	while (vp != NULL && vp->v_type == VMARKER)
2243		vp = TAILQ_NEXT(vp, v_nmntvnodes);
2244
2245	/* Check if we are done */
2246	if (vp == NULL) {
2247		MNT_IUNLOCK(mp);
2248		free(*mvp, M_VNODE_MARKER);
2249		MNT_ILOCK(mp);
2250		*mvp = NULL;
2251		MNT_REL(mp);
2252		return (NULL);
2253	}
2254	(*mvp)->v_mount = mp;
2255	TAILQ_INSERT_AFTER(&mp->mnt_nvnodelist, vp, *mvp, v_nmntvnodes);
2256	return (vp);
2257}
2258
2259
2260void
2261__mnt_vnode_markerfree(struct vnode **mvp, struct mount *mp)
2262{
2263
2264	if (*mvp == NULL)
2265		return;
2266
2267	mtx_assert(MNT_MTX(mp), MA_OWNED);
2268
2269	KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
2270	TAILQ_REMOVE(&mp->mnt_nvnodelist, *mvp, v_nmntvnodes);
2271	MNT_IUNLOCK(mp);
2272	free(*mvp, M_VNODE_MARKER);
2273	MNT_ILOCK(mp);
2274	*mvp = NULL;
2275	MNT_REL(mp);
2276}
2277
2278
2279int
2280__vfs_statfs(struct mount *mp, struct statfs *sbp)
2281{
2282	int error;
2283
2284	error = mp->mnt_op->vfs_statfs(mp, &mp->mnt_stat);
2285	if (sbp != &mp->mnt_stat)
2286		*sbp = mp->mnt_stat;
2287	return (error);
2288}
2289
2290void
2291vfs_mountedfrom(struct mount *mp, const char *from)
2292{
2293
2294	bzero(mp->mnt_stat.f_mntfromname, sizeof mp->mnt_stat.f_mntfromname);
2295	strlcpy(mp->mnt_stat.f_mntfromname, from,
2296	    sizeof mp->mnt_stat.f_mntfromname);
2297}
2298
2299/*
2300 * ---------------------------------------------------------------------
2301 * This is the api for building mount args and mounting filesystems from
2302 * inside the kernel.
2303 *
2304 * The API works by accumulation of individual args.  First error is
2305 * latched.
2306 *
2307 * XXX: should be documented in new manpage kernel_mount(9)
2308 */
2309
2310/* A memory allocation which must be freed when we are done */
2311struct mntaarg {
2312	SLIST_ENTRY(mntaarg)	next;
2313};
2314
2315/* The header for the mount arguments */
2316struct mntarg {
2317	struct iovec *v;
2318	int len;
2319	int error;
2320	SLIST_HEAD(, mntaarg)	list;
2321};
2322
2323/*
2324 * Add a boolean argument.
2325 *
2326 * flag is the boolean value.
2327 * name must start with "no".
2328 */
2329struct mntarg *
2330mount_argb(struct mntarg *ma, int flag, const char *name)
2331{
2332
2333	KASSERT(name[0] == 'n' && name[1] == 'o',
2334	    ("mount_argb(...,%s): name must start with 'no'", name));
2335
2336	return (mount_arg(ma, name + (flag ? 2 : 0), NULL, 0));
2337}
2338
2339/*
2340 * Add an argument printf style
2341 */
2342struct mntarg *
2343mount_argf(struct mntarg *ma, const char *name, const char *fmt, ...)
2344{
2345	va_list ap;
2346	struct mntaarg *maa;
2347	struct sbuf *sb;
2348	int len;
2349
2350	if (ma == NULL) {
2351		ma = malloc(sizeof *ma, M_MOUNT, M_WAITOK | M_ZERO);
2352		SLIST_INIT(&ma->list);
2353	}
2354	if (ma->error)
2355		return (ma);
2356
2357	ma->v = realloc(ma->v, sizeof *ma->v * (ma->len + 2),
2358	    M_MOUNT, M_WAITOK);
2359	ma->v[ma->len].iov_base = (void *)(uintptr_t)name;
2360	ma->v[ma->len].iov_len = strlen(name) + 1;
2361	ma->len++;
2362
2363	sb = sbuf_new_auto();
2364	va_start(ap, fmt);
2365	sbuf_vprintf(sb, fmt, ap);
2366	va_end(ap);
2367	sbuf_finish(sb);
2368	len = sbuf_len(sb) + 1;
2369	maa = malloc(sizeof *maa + len, M_MOUNT, M_WAITOK | M_ZERO);
2370	SLIST_INSERT_HEAD(&ma->list, maa, next);
2371	bcopy(sbuf_data(sb), maa + 1, len);
2372	sbuf_delete(sb);
2373
2374	ma->v[ma->len].iov_base = maa + 1;
2375	ma->v[ma->len].iov_len = len;
2376	ma->len++;
2377
2378	return (ma);
2379}
2380
2381/*
2382 * Add an argument which is a userland string.
2383 */
2384struct mntarg *
2385mount_argsu(struct mntarg *ma, const char *name, const void *val, int len)
2386{
2387	struct mntaarg *maa;
2388	char *tbuf;
2389
2390	if (val == NULL)
2391		return (ma);
2392	if (ma == NULL) {
2393		ma = malloc(sizeof *ma, M_MOUNT, M_WAITOK | M_ZERO);
2394		SLIST_INIT(&ma->list);
2395	}
2396	if (ma->error)
2397		return (ma);
2398	maa = malloc(sizeof *maa + len, M_MOUNT, M_WAITOK | M_ZERO);
2399	SLIST_INSERT_HEAD(&ma->list, maa, next);
2400	tbuf = (void *)(maa + 1);
2401	ma->error = copyinstr(val, tbuf, len, NULL);
2402	return (mount_arg(ma, name, tbuf, -1));
2403}
2404
2405/*
2406 * Plain argument.
2407 *
2408 * If length is -1, treat value as a C string.
2409 */
2410struct mntarg *
2411mount_arg(struct mntarg *ma, const char *name, const void *val, int len)
2412{
2413
2414	if (ma == NULL) {
2415		ma = malloc(sizeof *ma, M_MOUNT, M_WAITOK | M_ZERO);
2416		SLIST_INIT(&ma->list);
2417	}
2418	if (ma->error)
2419		return (ma);
2420
2421	ma->v = realloc(ma->v, sizeof *ma->v * (ma->len + 2),
2422	    M_MOUNT, M_WAITOK);
2423	ma->v[ma->len].iov_base = (void *)(uintptr_t)name;
2424	ma->v[ma->len].iov_len = strlen(name) + 1;
2425	ma->len++;
2426
2427	ma->v[ma->len].iov_base = (void *)(uintptr_t)val;
2428	if (len < 0)
2429		ma->v[ma->len].iov_len = strlen(val) + 1;
2430	else
2431		ma->v[ma->len].iov_len = len;
2432	ma->len++;
2433	return (ma);
2434}
2435
2436/*
2437 * Free a mntarg structure
2438 */
2439static void
2440free_mntarg(struct mntarg *ma)
2441{
2442	struct mntaarg *maa;
2443
2444	while (!SLIST_EMPTY(&ma->list)) {
2445		maa = SLIST_FIRST(&ma->list);
2446		SLIST_REMOVE_HEAD(&ma->list, next);
2447		free(maa, M_MOUNT);
2448	}
2449	free(ma->v, M_MOUNT);
2450	free(ma, M_MOUNT);
2451}
2452
2453/*
2454 * Mount a filesystem
2455 */
2456int
2457kernel_mount(struct mntarg *ma, int flags)
2458{
2459	struct uio auio;
2460	int error;
2461
2462	KASSERT(ma != NULL, ("kernel_mount NULL ma"));
2463	KASSERT(ma->v != NULL, ("kernel_mount NULL ma->v"));
2464	KASSERT(!(ma->len & 1), ("kernel_mount odd ma->len (%d)", ma->len));
2465
2466	auio.uio_iov = ma->v;
2467	auio.uio_iovcnt = ma->len;
2468	auio.uio_segflg = UIO_SYSSPACE;
2469
2470	error = ma->error;
2471	if (!error)
2472		error = vfs_donmount(curthread, flags, &auio);
2473	free_mntarg(ma);
2474	return (error);
2475}
2476
2477/*
2478 * A printflike function to mount a filesystem.
2479 */
2480int
2481kernel_vmount(int flags, ...)
2482{
2483	struct mntarg *ma = NULL;
2484	va_list ap;
2485	const char *cp;
2486	const void *vp;
2487	int error;
2488
2489	va_start(ap, flags);
2490	for (;;) {
2491		cp = va_arg(ap, const char *);
2492		if (cp == NULL)
2493			break;
2494		vp = va_arg(ap, const void *);
2495		ma = mount_arg(ma, cp, vp, (vp != NULL ? -1 : 0));
2496	}
2497	va_end(ap);
2498
2499	error = kernel_mount(ma, flags);
2500	return (error);
2501}
2502